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Characterization of Monolithic CMOS Pixel Sensor Chip with Ion Beams for Application in Particle Computed Tomography

Scientific reports(2020)SCI 3区

Univ Bergen | Hungarian Acad Sci | Utrecht Univ Nikhef | Heidelberg Ion Beam Therapy Ctr HIT | Haukeland Hosp | ANSTO | Western Norway Univ Appl Sci | Univ Oslo | Eotvos Lorand Univ | European Org Nucl Res CERN | German Canc Res Ctr

Cited 7|Views27
Abstract
Particle computed tomography (pCT) is an emerging imaging modality that promises to reduce range uncertainty in particle therapy. The Bergen pCT collaboration aims to develop a novel pCT prototype based on the ALPIDE monolithic CMOS sensor. The planned prototype consist of two tracking planes forming a rear tracker and Digital Tracking Calorimeter (DTC). The DTC will be made of a 41 layer ALPIDE-aluminum sandwich structure. To enable data acquisition at clinical particle rates, a large multiplicity of particles will be measured using the highly-granular ALPIDE sensor. In this work, a first characterization of the ALPIDE sensor performance in ion beams is conducted. Particle hits in the ALPIDE sensor result in charge clusters whose size is related to the chip response and the particle energy deposit. Firstly, measurements in a 10 MeV 4He micro beam have been conducted at the SIRIUS microprobe facility of ANSTO to investigate the dependence of the cluster size on the beam position over the ALPIDE pixel. Here, a variation in cluster size depending on the impinging point of the beam was observed. Additional beam tests were conducted at the Heidelberg Ion-Beam Therapy Center (HIT) investigating the cluster size as a function of the deposited energy by protons and 4He ions in the sensitive volume of the ALPIDE. Results show the expected increase in cluster sizes with deposited energy and a clear difference in cluster sizes for protons and 4He ions. As a conclusion, the variation in cluster size with the impinging point of the beam has to be accounted for to enable accurate energy loss reconstruction with the ALPIDE. This does, however, not affect the tracking of particles through the final prototype, as for that only the center-of-mass of the cluster is relevant.
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Key words
Particle computed tomography (pCT),Monolithic active pixel sensor (MAPS),Digital tracking calorimeter (DTC)
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要点】:本文研究了ALPIDE单片CMOS传感器芯片在离子束下的性能,为粒子计算断层扫描(pCT)应用提供重要依据,发现粒子撞击点位置影响电荷簇大小,对能量损失重建的准确性至关重要。

方法】:通过在SIRIUS微探针设施和海德堡离子束治疗中心(HIT)进行离子束测试,测量了ALPIDE传感器上电荷簇大小与粒子撞击位置及沉积能量的关系。

实验】:在ANSTO的SIRIUS微探针设施中进行了10 MeV He-4微束测量,并在HIT进行了质子和He-4离子在ALPIDE敏感体积内沉积能量与电荷簇大小的测试,结果显示了电荷簇大小随沉积能量增加而增大,且质子和He-4离子产生的电荷簇大小存在明显差异。